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Fouda, R.

Publications and source records attributed to Fouda, R..

2 recordsLinked to original sources

Quantitative MRI Reveals Bone Marrow Regeneration Following Targeted Marrow Irradiation and Transplantation in a Sickle Cell Disease Model

Sickle cell disease (SCD) is associated with chronic bone marrow stress, altered hematopoiesis, and reduced adiposity. Whether marrow-selective conditioning followed by transplantation normalizes these abnormalities remains unclear. We investigated bone marrow remodeling in Townes mice by comparing SCD control (SCD-Con) with mice that received total marrow irradiation (TMI) followed by bone marrow transplantation (SCD-TMI-BMT). Multiparametric micro-MRI at 7 T quantified proton density water fraction (PDWF), proton density fat fraction (PDFF), and R2*(1/T2*), and micro-CT assessed trabecular structure in the femur. SCD-Con marrow showed higher water content (elevated PDWF), reduced adiposity (lower PDFF), and imaging features consistent with erythroid hyperplasia and elevated iron burden (shorter T2* with reciprocal increase in R2*). In contrast, SCD-TMI-BMT mice demonstrated smaller R2*, reduced PDWF, and partial restoration of adiposity, accompanied by reciprocal shifts in R2*, consistent with decreased cellular iron and marrow remodeling. Micro-CT revealed an improved trabecular architecture after BMT compared to SCD control. MRI imaging biomarkers aligned with histologic evidence of reduced cellularity and larger adipocyte voids. In conclusion, a TMI-BMT SCD model promotes partial normalization of the marrow microenvironment. Multiparametric MRI with micro-CT provides a practical, non-invasive framework for monitoring marrow remodeling and skeletal health after curative therapy.

bioengineering↗

Low-intensity transcranial focused ultrasound changes pain-associated behaviors by modulating pain processing brain circuits

There is an urgent and unmet clinical need to develop non-pharmacological interventions for chronic pain management due to the critical side effects of opioids. Low-intensity transcranial focused ultrasound is an emerging non-invasive neuromodulation technology with high spatial specificity and deep brain penetration. Here, we developed a tightly-focused 128-element ultrasound transducer to specifically target small mouse brains, employing dynamic focus steering. We demonstrate that transcranial focused ultrasound stimulation at pain processing brain circuits can significantly alter pain-associated behaviors in mouse models in vivo. Our findings indicate that a single-session focused ultrasound stimulation to the primary somatosensory cortex (S1) significantly attenuates heat pain sensitivity in wild-type mice and modulates heat and mechanical hyperalgesia in a humanized mouse model of chronic pain in sickle cell disease. Results further revealed a sustained behavioral change associated with heat hypersensitivity by targeting deeper cortical structures (e.g., insula) and multi-session focused ultrasound stimulation to S1 and insula. Analyses of brain electrical rhythms through electroencephalography demonstrated a significant change in noxious heat hypersensitive- and chronic hyperalgesia-associated neural signals following focused ultrasound treatment. Validation of efficacy was carried out through control experiments, tuning ultrasound parameters, adjusting inter-experiment intervals, and investigating effects on age, gender, genotype, and in a head-fixed awake model. Importantly, transcranial focused ultrasound was shown to be safe, causing no adverse effects on motor function and brain neuropathology. In conclusion, the rich experimental evidence validates the ability of novel focused ultrasound neuromodulation to suppress pain, presenting significant translational potential for next-generation chronic pain treatment without adverse effects. Key pointsO_LINovel non-invasive neuromodulation of brains pain processing circuits with submillimeter spatial precision for pain management C_LIO_LITranscranial focused ultrasound significantly modulates pain-related behaviors and brain electrical rhythms of pain in humanized SCD mice C_LI

bioengineering↗